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2

The function std::move() is defined as 

template<typename T>
typename std::remove_reference<T>::type&& move(T && t)
{ 
    return static_cast<typename std::remove_reference<T>::type&&>( t ); 
}

There are four places where I can imagine the move constructor to be called:

  1. When the parameter is passed.
  2. When the cast is performed.
  3. When the result is returned.
  4. Not in the std::move() function itself but possibly at the place where the returned reference ultimately arrives.

I would bet for number 4, but I'm not 100% sure, so please explain your answer.

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Simple answer: Never (or rather 4)! In the end rvalue_cast (or something similar) would probably have been a better name than move for an operation that never moves at all. – Christian Rau Feb 7 at 15:23
And +1 for providing a reference question (if there isn't any yet) for future duplicates (which will surely come). – Christian Rau Feb 7 at 15:29

2 Answers

up vote 6 down vote accepted

There is no move construction going on. std::move() accepts a reference and returns a reference. std::move() is basically just a cast.

Your guess 4. is the right one (assuming that you are actually calling a move constructor in the end).

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3  
std::move is such a silly name because it doesn't move anything (i.e. because, yes, the answer is 4). I've had this argument with committee members and they are of the opinion that it's fine because "people will only ever use std::move as a precursor to moving something". I feel that this completely violates the spirit of C++. – Lightness Races in Orbit Feb 7 at 12:26
@LightnessRacesinOrbit Yes, I find the name move confusing too. – Ali Feb 7 at 12:38
up vote 3 down vote

std::move is just a type cast, it tells the compiler that the type is an rvalue.

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2  
That's kinda what I though. Hence std::move() actually doesn't move and doesn't even need to lead to a move operation. – Ralph Tandetzky Feb 7 at 11:44
That's why I don't understand some people saying that the move can prevent the (N)RVO. From my experiments with GCC the (N)RVO works just fine with move. – ArtemGr Feb 7 at 11:51
1  
Using return std::move(local_var); instead of just return local_var; will indeed inhibit (N)RVO, see this. – Xeo Feb 7 at 12:18
1  
It does inhibit (N)RVO, simply because the standard says (N)RVO is only allowed to happen when you write return local_var;. – Xeo Feb 7 at 12:24
2  
@ArtemGr Try with a more conformant version stacked-crooked.com/view?id=d4bb782e20433f48f9a61cc2106d502d – R. Martinho Fernandes Feb 7 at 12:36
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